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拟南芥中组蛋白 H4 的系统替换揭示了 H4R17 在调控开花时间中的作用。

Systematic histone H4 replacement in Arabidopsis thaliana reveals a role for H4R17 in regulating flowering time.

机构信息

Faculty of Arts and Sciences, Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, CT 06511, USA.

Cold Spring Harbor Laboratory, Cold Spring Harbor, NY 11724, USA.

出版信息

Plant Cell. 2022 Sep 27;34(10):3611-3631. doi: 10.1093/plcell/koac211.

Abstract

Despite the broad array of roles for epigenetic mechanisms on regulating diverse processes in eukaryotes, no experimental system is currently available in plants for the direct assessment of histone function. In this work, we present the development of a genetic strategy in Arabidopsis (Arabidopsis thaliana) whereby modified histone H4 transgenes can completely replace the expression of endogenous histone H4 genes. Accordingly, we established a collection of plants expressing different H4 point mutants targeting residues that may be post-translationally modified in vivo. To demonstrate its utility, we screened this new H4 mutant collection to uncover substitutions in H4 that alter flowering time. We identified different mutations in the H4 tail (H4R17A) and the H4 globular domain (H4R36A, H4R39K, H4R39A, and H4K44A) that strongly accelerate the floral transition. Furthermore, we identified a conserved regulatory relationship between H4R17 and the ISWI chromatin remodeling complex in plants: As with other biological systems, H4R17 regulates nucleosome spacing via ISWI. Overall, this work provides a large set of H4 mutants to the plant epigenetics community that can be used to systematically assess histone H4 function in Arabidopsis and a roadmap to replicate this strategy for studying other histone proteins in plants.

摘要

尽管表观遗传机制在调节真核生物的各种过程中具有广泛的作用,但目前在植物中还没有可用于直接评估组蛋白功能的实验系统。在这项工作中,我们提出了一种在拟南芥(Arabidopsis thaliana)中发展的遗传策略,通过该策略可以完全替代内源组蛋白 H4 基因的表达。因此,我们建立了一个表达不同 H4 点突变体的植物集合,这些突变体针对体内可能发生翻译后修饰的残基。为了证明其用途,我们筛选了这个新的 H4 突变体集合,以发现改变开花时间的 H4 突变。我们在 H4 尾部(H4R17A)和 H4 球状结构域(H4R36A、H4R39K、H4R39A 和 H4K44A)中发现了不同的突变,这些突变强烈加速了花的转变。此外,我们还鉴定了 H4R17 与植物中 ISWI 染色质重塑复合物之间的保守调控关系:与其他生物系统一样,H4R17 通过 ISWI 调节核小体间距。总的来说,这项工作为植物表观遗传学研究提供了一套大量的 H4 突变体,可以用于系统地评估拟南芥中组蛋白 H4 的功能,并为在植物中研究其他组蛋白蛋白的策略提供了路线图。

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